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J Gatesy

Publications and source records attributed to J Gatesy.

8 recordsLinked to original sources

A cladistic analysis of mitochondrial ribosomal DNA from the Bovidae.

There is a huge data base of genetic information for the domestic artiodactyl species Bos taurus (cow), Ovis aries (sheep), and Capra hircus (goat). However, the phylogenetic relationships of these economically critical taxa and their close relatives, family Bovidae, remain for the most part unresolved. In this report, we aligned new mitochondrial (mt) 12S and 16S ribosomal (r) DNA sequences from 26 bovid taxa with published sequences. Phylogenetic analyses of the more than 64 kilobases of mt rDNA from 57 taxa support a basal division in the Bovidae that separates Bos and its close relatives from Capra, Ovis, and their kin. As suggested by previous molecular and morphological studies, "antelopes" are a paraphyletic assemblage. Caprinae (sheep, goats, goat antelopes, and musk oxen) groups consistently with hippotragine and alcelaphine antelopes, while Bovini (cattle and buffaloes) clusters with tragelaphine and boselaphine antelopes. The traditional tribal subdivisions of Bovidae are supported in most cases, but there are exceptions within Caprinae and Antilopinae (gazelles and close relatives). The rDNA data consistently place the enigmatic genera Pelea, Pantholops, and Saiga, but the origin of Aepyceros, the impala, remains obscure. Combined phylogenetic analyses of the rDNA data with the skeletal characters of Gentry (1992) were used to assess the stability of the molecular results.

Animals

More DNA support for a Cetacea/Hippopotamidae clade: the blood-clotting protein gene gamma-fibrinogen.

Recent phylogenetic analyses of DNA sequences suggest that cetaceans (whales) and hippopotamid artiodactyls (hippos) are extant sister taxa. Consequently, the shared aquatic specializations of these taxa may be synapomorphies. This molecular view is contradicted by paleontological data that overwhelmingly support a monophyletic Artiodactyla (even-toed ungulates) and a close relationship between Cetacea and extinct mesonychian ungulates. According to the fossil evidence, molecular, behavioral, and anatomical resemblances between hippos and whales are interpreted as convergences or primitive retentions. In this report, competing interpretations of whale origins are tested through phylogenetic analyses of the blood-clotting protein gene gamma-fibrinogen from cetaceans, artiodactyls, perissodactyls (odd-toed ungulates), and carnivores (cats, dogs, and kin). In combination with published DNA sequences, the gamma-fibrinogen data unambiguously support a hippo/whale clade and are inconsistent with the paleontological perspective. If the phylogeny favored by fossil evidence is accepted, the convergence at the DNA level between Cetacea and Hippopotamidae is remarkable in its distribution across three genetic loci: gamma-fibrinogen, the linked milk casein genes, and mitochondrial cytochrome b.

Animals

Evidence from milk casein genes that cetaceans are close relatives of hippopotamid artiodactyls.

The inferred transition from terrestrial hoofed mammal to fully aquatic cetacean has been intensively studied with fossil evidence. However, large sections of this remarkable evolutionary sequence are missing. Phylogenetic analysis of extant taxa may help to fill in some of these gaps. In this report, kappa-casein (exon 4) and beta-casein (exon 7) milk protein genes from cetaceans and other placental mammals were PCR-amplified, sequenced, and aligned to previously published sequences. Phylogenetic analyses of the casein data suggest that hippopotamid artiodactyls are more closely related to cetaceans than to other artiodactyls (even-toed hoofed mammals). An analysis of the nuclear casein sequences combined with published mitochondrial cytochrome b DNA sequences also supports the Cetacea/Hippopotamidae sister group. This affinity implies that some of the aquatic traits of cetaceans were derived in the common ancestor of Cetacea and Hippopotamidae. An extant "missing link" to Cetacea may have been overlooked by science since the description of the semiaquatic Hippopotamus in 1758. Paleontological information is grossly inconsistent with this hypothesis. If the casein phylogeny is accurate, large gaps in the fossil record as well as extensive morphological reversals and convergences must be acknowledged.

Amino Acid Sequence

Elision: a method for accommodating multiple molecular sequence alignments with alignment-ambiguous sites.

The process of multiple sequence alignment provides homology statements for the phylogenetic analysis of molecular data. Unfortunately, multiple alignments are frequently nonunique. Two sources of these multiple alignments are analysis based on different sets of alignment parameter values (gap:change cost ratios) and nonunique equally costly alignments based on a single set of alignment parameters. By "eliding" these individual alignments into a single grand alignment, phylogeny that is weighted toward those positions that align more consistently can be reconstructed. Positions that show greater variation among alignments will be relatively downweighted. The technique results in a weighting procedure that is a posteriori and based on the evidence established from the original sequence alignments.

Alligators and Crocodiles

PCR assays of variable nucleotide sites for identification of conservation units.

A number of authors have recently suggested that the best approach for identifying units of conservation is to follow a systematics model of character analysis (Amato, 1991; Cracraft, 1991; Vogler and DeSalle, 1994). This approach necessitates the use of an operational, typological, evolutionary species concept. The use of the phylogenetic species concept has the utility and philosophical logic appropriate for this task. Additionally, there is a large body of literature that uses this framework, along with a parsimony based character analysis to identify patterns of phylogeny (Cracraft, 1983; Nelson and Platnick, 1981; Nixon and Wheeler, 1990). While we advocate this approach, we recognize that one of its limiting factors is sample size. We propose that by selective direct sequencing plus rapid sampling of variable target characters by polymerase chain reaction (PCR) assays of specific sites, sufficiently large numbers of individuals can be accurately, inexpensively, and quickly surveyed for diagnostic characters. This procedure is demonstrated by a survey of variable nucleotide sites in the Caiman crocodilus complex.

Alligators and Crocodiles

Alignment-ambiguous nucleotide sites and the exclusion of systematic data.

Molecular systematists generally rely on computer algorithms to establish the alignment of DNA sequences. However, when alignment regions are characterized by multiple insertions and deletions, these gap-filled stretches of DNA are often excised before phylogenetic reconstruction. This exclusion of systematic data is generally determined by subjective criteria. We explore a replicable methodology in which the comparison of several multiple sequence alignments can be used to eliminate regions of unstable sequence alignment. Using crocodilian and insect mitochondrial (mt) ribosomal (r) DNA as examples, we caution against the removal of sequence data prior to phylogenetic reconstruction.

Algorithms

DNA sequences from a fossil termite in Oligo-Miocene amber and their phylogenetic implications.

DNA was extracted from the fossil termite Mastotermes electrodominicus preserved in Oligo-Miocene amber (25 million to 30 million years old). Fragments of mitochondrial [16S ribosomal DNA (rDNA)] and nuclear (18S rDNA) genes were amplified by polymerase chain reaction. Phylogenetic analysis of fossil and extant 18S rDNA confirmed morphological cladistic analyses of living dictyopterans (termites, cockroaches, and mantids). The fossil termite shares several sequence attributes with Mastotermes darwiniensis. Addition of this fossil to living-species phylogeny is required to substantiate Mastotermes monophyly and affects molecular phylogenetic hypotheses of termites in this, the oldest DNA yet characterized.

Animals

Phylogeny of the Bovidae (Artiodactyla, Mammalia), based on mitochondrial ribosomal DNA sequences.

Portions of the 12S and 16S mitochondrial ribosomal genes for 16 species representing nine tribes in the mammal family Bovidae were compared with six previously published orthologous sequences. Phylogenetic analysis of variable nucleotide positions under different constraints and weighting schemes revealed no robust groupings among tribes. Consensus trees support previous hypotheses of monophyly for four clades, including the traditional subfamily Bovinae. However, the basal diversification of bovid tribes, which was largely unresolved by morphological, immunodiffusion, allozyme, and protein sequence data, remains unresolved with the addition of DNA sequence data. The intractability of this systematic problem is consistent with a rapid radiation of the major bovid groups. Several analyses of our data show that monophyly of the Bovidae, which was weakly supported by previous morphological and molecular work, is questionable.

Animals